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Characterization and modelling of a conducting polymer muscle-like linear actuator

机译:导电聚合物类肌肉线性致动器的表征和建模

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摘要

The demand for actuators featuring biomimetic properties, such as linearity, high power density and compliance, is growing in microrobotics and bioengineering. In the present paper a novel linear actuator is presented. It exploits the electromechanochemical phenomena of pi-electron conjugated conducting polymers, occuring when ionic species are exchanged with the surrounding medium, i.e. solid or liquid electrolyte. In our experiments, a polypyrrole film doped with benzensulphonate anions is considered as the conducting polymer and a liquid electrolyte bath as the ionic reservoir. The actuating properties of the material are investigated and quantified in terms of both isotonic displacement and isometric developed force. A lumped parameter, muscle-like model of the system is proposed and verified with respect to the experimental data. The results of the electromechanical characterization and the goodness of fit of the model provide favourable indications for the utilization of the material as an effective muscle-like linear actuator, once the response time is decreased by means of a suitable scaling down of the film thickness.
机译:在微型机器人和生物工程领域,对具有仿生特性(例如线性,高功率密度和顺应性)的执行器的需求正在增长。在本文中,提出了一种新颖的线性致动器。它利用了π电子共轭导电聚合物的机电现象,这种现象是在离子物质与周围介质(即固体或液体电解质)交换时发生的。在我们的实验中,掺杂有苯磺酸根阴离子的聚吡咯膜被认为是导电聚合物,而液体电解质浴被认为是离子储库。根据等渗位移和等轴测力来研究和量化材料的致动特性。提出了系统的集总参数,类似肌肉的模型,并针对实验数据进行了验证。一旦通过适当减小膜厚来缩短响应时间,机电特性的结果和模型的拟合优度就为将该材料用作有效的类肌肉线性致动器提供了有利的指示。

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